Tech
The networks that will turn potential into profit in 2026 | Computer Weekly
Of all the technology topics covered by industry analysts, financiers and pundits over the course of 2025, perhaps the most interesting was that of the so-called artificial intelligence (AI) bubble. Very much a dog that didn’t bark over the past 12 months – just go ask Nvidia – those supposedly in the know ended the year more or less hedging their bets, predicting that something still “may likely” happen in the general IT space in 2026.
Yet in networking and telecoms, it can be said with some certainty that, in 2026, AI will be as indispensable as it has been for the recent past. And if 2025 was the year in which the potential of AI in networking was realised, 2026 will be a year in which networks will need to be constructed to turn this potential into profit.
As businesses and connectivity providers alike know only too well, soaring AI capacity means network infrastructure is constantly having to adapt to a multitude of external pressures and unprecedented strains.
In December 2025, IT and networking giant Cisco noted that with 22.4 billion internet of things (IoT) devices generating more than 90 zettabytes of data a year, the next 12 months will see organisations tap into the vast well of telemetry, machine, IoT and industrial IoT (IIoT) data. AI is absolutely fundamental in analysing and combining these sources of business intelligence.
Growth brings challenges
As a result, AI has fuelled an unprecedented surge in network demand, with the emergence and widespread adoption of agentic AI-enabled applications further reshaping infrastructure requirements, prompting a rapid evolution in networking solutions. Keeping pace with the next wave of AI growth will require new long-haul networks to enable the rapid scaling of capacity needs in both existing and emerging enterprise setups.
This next generation of networks will have to keep pace with AI, offering extended and greater overall network capacity and capability. Assessing in April 2025 how to solve these issues, leading research firm Omdia observed in a study, The all-photonics network enables the next-gen digital economy, that to drive the continued growth of the global AI economy, networks will need to evolve significantly to deliver enhanced capabilities.
The analyst said new, advanced optical networks were necessary to meet advanced application and service requirements, and address surging capacity needs within tight capital expenditure targets. This message will ring ever truer in 2026.
As well as supporting business agility to match bandwidth supply to service utilisation, the new advanced networks that will be deployed will need to offer the opportunity to have infrastructure with lower power consumption per bit to meet sustainability goals and reduce energy costs. And to display clearly the crushing need to address the challenge, the Omdia research calculated that when measured in gigawatts, total global datacentre capacity – what the analyst called the key enabling infrastructure for AI capabilities – is set to grow by 57% from 2024 to 2027.
Next-generation optical networks will almost certainly begin to emerge during 2026, build upon advances in core optics technology to offer improved system reach capabilities, cost optimisation, enhanced optical switching and improvements in multilayer and supplier management supported by the standards community. For enterprises in particular, such infrastructure will offer benefits such as greater security, agility and return on investment for their AI and cloud adoption.
But there could be some headwinds approaching businesses. Looking ahead to the new year, networking giant Cisco noted in December 2025 that the networking industry stood at an inflection point, with an emerging trend of AI infrastructure debt. That is to say, in the race to deploy AI, firms were deploying systems on top of ageing infrastructures that were never built for the demands of the current work environment.
Analysts and tech firms alike believe that 2026 will be defined by firms that modernise their fundamental network infrastructure, building what Cisco called “a resilient, AI-ready backbone to power a safer, faster, transformative future”.
The company also predicted that manufacturing, energy and logistics teams will increasingly use IIoT data to cut downtime and improve efficiency, marking the second phase of AI’s evolution. This shift, it said, would be powered by advances in specialised AI chips, TinyML, for ultra-efficient on-device inference, while federated learning trains models across distributed edge devices without centralising sensitive data. Cisco stressed that embedding security into the infrastructure would be essential to protect these workloads as they scale.
Another area of networking to keep an eye on will be quantum. 2025 saw a number of advances in the area, both in the software and hardware domains and it’s not unreasonable to expect a lot more of both this coming year. In the hardware space, recent work has revealed chips that enable quantum communication over existing fibre without specialised infrastructure. 2026 will also see more research into networks tapping into the behaviour of quantum particles, with commercialisation around 2030.
Advancing 5G networks
As regards the telecoms arena, for the UK at least, the key theme will be advancing the roll-out of 5G networks around the country, allowing businesses to tap into infrastructures that support more complex and richer business applications.
We’ll see operators increasingly switching off 3G networks and using their allocated frequency spectrum for 5G. There is a straightforward logic to this: 3G networks were simply not built to address the demands of the modern comms industry. They were constructed to support basic web browsing, not the high-bandwidth applications that modern businesses are based on, such as video collaboration.
2026 will see a UK mobile market where all of the major operators have switched off their 3G networks and will be offering enhanced mobile coverage across the country. Better mobile means better business. What will also be seen is an increased amount of coverage upgrades, not just in major towns and cities through more masts, but also along major roads and motorways and in coastal areas. Small cells will be installed in the busiest city centres and tourist destinations, and significant 4G and 5G network upgrades will be made at major sporting venues such as the Allianz Stadium and Wembley.
In the US and Asia, 5G Advanced networks will continue their roll-out, with firms really taking advantage of the technological benefits of the new infrastructure. Critically, 5G Advanced is the first mobile infrastructure to be purpose-built for AI. The gains will be readily apparent.
Looking further out, or, to be more accurate, upwards, 2026 will almost certainly see the continuation of the satellite communications industry. A key driver in the development of the market will be the significant increase in the number of handsets about to connect to satellite services.
In 2025, non-terrestrial networks (NTN) and satellite connectivity moved very markedly from niche to mainstream, whether in rural broadband or direct-to-cell use cases. By the end of the year, there were nearly 200 publicly announced operator-satellite partnerships in almost 100 countries and territories, and of these, 34 operators have launched commercial services. This momentum will persist into 2026.
Of those leading the industry, Starlink gained the highest orbit, sealing 44 partnerships, followed by AST SpaceMobile and Lynk. The growth of the satellite IoT market will further solidify satellite’s role in the global connectivity landscape. New constellations providing wide IoT connectivity will be a key part of the satellite communications industry.
Overall, in the networking world, 2026 will be the year when the essence will move from what is possible to what can be unlocked. A year when business plans can become business realities and when coverage and capability go hand in hand. Networks of all forms will be constructed to turn potential into profit and take enterprises into new worlds.
Tech
Managing traffic in space
Chances are, you’ve already used a satellite today. Satellites make it possible for us to stream our favorite shows, call and text a friend, check weather and navigation apps, and make an online purchase. Satellites also monitor the Earth’s climate, the extent of agricultural crops, wildlife habitats, and impacts from natural disasters.
As we’ve found more uses for them, satellites have exploded in number. Today, there are more than 10,000 satellites operating in low-Earth orbit. Another 5,000 decommissioned satellites drift through this region, along with over 100 million pieces of debris comprising everything from spent rocket stages to flecks of spacecraft paint.
For MIT’s Richard Linares, the rapid ballooning of satellites raises pressing questions: How can we safely manage traffic and growing congestion in space? And at what point will we reach orbital capacity, where adding more satellites is not sustainable, and may in fact compromise spacecraft and the services that we rely on?
“It is a judgement that society has to make, of what value do we derive from launching more satellites,” says Linares, who recently received tenure as an associate professor in MIT’s Department of Aeronautics and Astronautics (AeroAstro). “One of the things we try to do is approach these questions of traffic management and orbital capacity as engineering problems.”
Linares leads the MIT Astrodynamics, Space Robotics, and Controls Lab (ARCLab), a research group that applies astrodynamics (the motion and trajectory of orbiting objects) to help track and manage the millions of objects in orbit around the Earth. The group also develops tools to predict how space traffic and debris will change as operators launch large satellite “mega-constellations” into space.
He is also exploring the effects of space weather on satellites, as well as how climate change on Earth may limit the number of satellites that can safely orbit in space. And, anticipating that satellites will have to be smarter and faster to navigate a more cluttered environment, Linares is looking into artificial intelligence to help satellites autonomously learn and reason to adapt to changing conditions and fix issues onboard.
“Our research is pretty diverse,” Linares says. “But overall, we want to enable all these economic opportunities that satellites give us. And we are figuring out engineering solutions to make that possible.”
Grounding practical problems
Linares was born and raised in Yonkers, New York. His parents both worked as school bus drivers to support their children, Linares being the youngest of six. He was an active kid and loved sports, playing football throughout high school.
“Sports was a way to stay focused and organized, and to develop a work ethic,” Linares says. “It taught me to work hard.”
When applying for colleges, rather than aim for Division I schools like some of his teammates, Linares looked for programs that were strong in science, specifically in aerospace. Growing up, he was fascinated with Carl Sagan’s “Cosmos” docuseries. And being close to Manhattan, he took regular trips to the Hayden Planetarium to take in the center’s immersive projections of space and the technologies used to explore it.
“My interest in science came from the universe and trying to understand our place within it,” Linares recalls.
Choosing to stay close to home, he applied to in-state schools with strong aeronautical engineering departments, and happily landed at the State University of New York at Buffalo (SUNY Buffalo), where he would ultimately earn his bachelor’s, master’s, and doctoral degrees, all in aerospace engineering.
As an undergraduate, Linares took on a research project in astrodynamics, looking to solve the problem of how to determine the relative orientation of satellites flying in formation.
“Formation flying was a big topic in the early 2000s,” Linares says. “I liked the flavor of the math involved, which allowed me to go a layer deeper toward a solution.”
He worked out the math to show that when three satellites fly together, they essentially form a triangle, the angles of which can be calculated to determine where each satellite is in relation to the other two at any moment in time. His work introduced a new controls approach to enable satellites to fly safely together. The research had direct applications for the U.S. Air Force, which helped to sponsor the work.
As he expanded the research into a master’s thesis, Linares also took opportunities to work directly with the Air Force on issues of satellite tracking and orientation. He served two internships with the U.S. Air Force Research Lab, one at Kirtland Air Force Base in Albuquerque, New Mexico, and the other in Maui, Hawaii.
“Being able to collaborate with the Air Force back then kind of grounded the research in practical problems,” Linares says.
For his PhD, he turned to another practical problem of “uncorrelated tracks.” At the time, the Air Force operated a network of telescopes to observe more than 20,000 objects in space, which they were working to label and record in a catalog to help them track the objects over time. But while detecting objects was relatively straightforward, the challenge came in correlating a detected object with what was already in the catalog. In other words, is what they were seeing something they had already seen?
Linares developed image analysis techniques to identify key characteristics of objects such as their shape and orientation, which helped the Air Force “fingerprint” satellites and pieces of space debris, and track their activity — and potential for collisions — over time.
After completing his PhD, Linares worked as a postdoc at Los Alamos National Laboratory and the U.S. Naval Observatory. During that time he expanded his aerospace work to other areas including space weather, using satellite measurements to model how Earth’s ionosphere — the upper layer of the atmosphere that is ionized by the sun’s radiation — affects satellite drag.
He then accepted a position as assistant professor of aerospace engineering at the University of Minnesota at Minneapolis. For the next three years, he continued his research in modeling space weather, tracking space objects and coordinating satellites to fly in swarms.
Making space
In 2018, Linares made the move to MIT.
“I had a lot of respect for the people and for the history of the work that was done here,” says Linares, who was especially inspired by the legendary Charles Stark “Doc” Draper, who developed the first inertial guidance systems in the 1940s that would enable the self-navigation of airplanes, submarines, satellites, and spacecraft for decades to come. “This was essentially my field, and I knew MIT was the best place to continue my career.”
As a junior faculty member in AeroAstro, Linares spent his first years focused on an emerging challenge: space sustainability. Around that time, the first satellite constellations were launching into low-Earth orbit with SpaceX’s Starlink, which aimed to provide global internet coverage via a huge network of several thousand coordinating satellites. The launching of so many satellites, into orbits that already held other active and nonactive satellites, along with millions of pieces of space debris, raised questions about how to safely manage the satellite traffic and how much traffic an orbit can sustain.
“At what level do we reach a tipping point, where we have too many satellites in certain orbital regimes?” Linares says. “It was kind of a known problem at the time, but there weren’t many solutions.”
Linares’ group applied an understanding of astrodynamics, and the physics of how objects move in space, to figure out the best way to pack satellites in orbital “shells,” or lanes that would most likely prevent collisions. They also developed a state-of-the-art model of orbital traffic, that was able to simulate the trajectories of more than 10 million individual objects in space. Previous models were much more limited in the number of objects they could accurately simulate. Linares’ open-source model, called the MIT Orbital Capacity Assessment Tool, or MoCAT, could account for the millions of pieces of space debris, in addition to the many intact satellites in orbit.
The tools that his group has developed are used today by satellite operators to plan and predict safe spacecraft trajectories. His team is continuing to work on problems of space traffic management and orbital capacity. They are also branching out into space robotics. The team is testing ways to teleoperate a humanoid robot, which could potentially help to build future infrastructure and carry out long-duration tasks in space.
Linares is also exploring artificial intelligence, including ways that a satellite can autonomously “learn” from its experience and safely adapt to uncertain environments.
“Imagine if each satellite had a virtual Doc Draper onboard that could do the de-bugging that we did from the ground during the Apollo missions,” Linares says. “That way, satellites would become instantaneously more robust. And it’s not taking the human out of the equation. It’s allowing the human to be amplified. I think that’s within reach.”
Tech
Meta Glasses Are Comfortable, Functional, and Make My Spouse Recoil in Fear
Every time I’ve written about Meta’s AI-enabled glasses, I invariably get asked these questions: Why do you even want these? Why do you want smart glasses that can play music or misidentify native flora in a weirdly cheery voice? I am a lifelong Ray-Ban Wayfarer wearer, and I’m also WIRED’s resident Meta wearer. I grab a pair of Meta glasses whenever I leave the house because I like being able to use one device instead of two or three on a walk. With Meta glasses, I can wear sunglasses and workout headphones in one!
Meta sold more than 7 million pairs in 2025. Take a look at any major outdoor or sporting event, and you’ll see more than a few people wearing these to record snippets for Instagram or TikTok. Meta’s partnership with EssilorLuxottica has made smart glasses accessible, stylish, and useful and is undoubtedly the reason why Google, and now Apple, are trying to horn in on the market. After the notable flop that is the Apple Vision Pro, Apple is recalibrating its face-wearable strategy, moving away from augmented reality (AR) toward simpler, display-less, and hopefully good-looking glasses.
That’s not to say that you shouldn’t be careful how you use these glasses. Meta doesn’t have the greatest track record on privacy, and the company has continued to push forward with policies that are questionable at best. Even if you’re not concerned that face recognition will allow Meta to target immigrants or enable stalkers to find their victims, at the very least, people really do not like the idea that you could start recording them at any moment.
Probably the biggest hurdle to wearing Meta glasses is that even doing so seems like a gross violation of the social contract. After all, these are Mark Zuckerberg’s “pervert glasses.” When I pop these on my head, I’ve had friends (and my spouse) recoil and say, “I have apps to warn me away from people like you.” The best part, though, is that Oakley and Ray-Ban already make really great sunglasses. Even if the battery runs out or you don’t use Meta AI at all, these are stellar at shading your eyes from the sun.
Anyway, if you decide to try them, here’s what you should get. If you do chicken out, check out our buying guides to the Best Smart Glasses or the Best Workout Headphones for more.
Table of Contents
Best Overall
Last year, Meta upgraded the original Meta Ray-Ban Wayfarers that became a smash hit. These are Meta’s entry-level glasses, and they come in a variety of lens styles. You can order them with clear lenses, prescription lenses, transition lenses, or the OG sunglass lenses, as well as in a variety of fits, including standard, large, or high-bridge frames. Improvements to this generation include an upgrade to a 12-MP camera and up to eight hours of battery life; writer Boone Ashworth’s testing clocked in at five to six hours.
Tech
The Smart Home Gadgets to Amp Up Your Curb Appeal
I tried the battery version, which does require you recharge it every couple of weeks, but the wired-in version is the top recommendation on our guide to the Best Video Doorbells.
A Better Birdhouse
I had a new-to-me problem this spring: bird invasion. A little bird made a nest in my front-door wreath without us noticing. One evening, my sister opened the door, and the bird flew out of the nest and straight into our house. After a 30-minute battle to get it outside again (and keep my cat from eating it), it wasn’t until we saw the bird fly off the door again the next day that we realized it was calling our home its home, too.
If this is a common problem at your house, our resident bird-gear tester Kat Merck has a solution: a smart nesting box. Birdfy makes a few different smart bird feeders we like for bird-watching, and the Nest Duo is a birdhouse that lets you watch the birds while they nest inside of it. It’s a slim, attractive box that will add to your front yard’s style while also packing two solar-powered cameras (one facing the entrance, one focused inside) so you can bird-watch from multiple angles. It comes with different hole sizes to appeal to different species, metal predator guards to prevent chewing around the hole, and a remote control to reset or recharge the camera without disturbing your feathered neighbors.
Stylish Smart Lights
I’ve liked Govee’s smart outdoor string lights before, usually for my holiday decor, and have previously recommended something similar with a bistro-light-like look that happened to be smart. These clear bulb string lights are part of Govee’s current lineup and have a contemporary twist with a triangle in the center instead of the wire filament. These are a fun option for outdoor lights you can enjoy on warm nights, and they can do every color and shade of white without looking as bulky as permanent outdoor lights. (Added bonus, these lights are also Matter compatible!)
Fresh Bulbs
If you have light fixtures you want to remote-control, add an outdoor smart bulb. There are tons to choose from, and you can usually find one from any brand you already have at home. The only downside is that outdoor-rated smart bulbs are usually 4.75-inch-diameter PAR38-style bulbs, so they’re best for downward-facing floodlights on your porch or balcony. They’ll likely be too big to fit in a wall fixture as a replacement for a normal-sized bulb. Don’t just grab any smart bulb—not all are outdoor-rated. Check for mentions of outdoor use and waterproof ratings to make sure they’re safe to use. I’m a big fan of Cync bulbs, and the brand has an outdoor version of the Cync Full Color bulbs I like to use indoors. You’ll be able to add fun colors as well as shades of white, so you can turn the porch a spooky orange or red for Halloween, pink for Valentine’s Day, or the colors of your favorite sports team on game day.
Remote-Controlled Garage
If your garage is the centerpiece of your home’s curb appeal, you can control it as easily as a smart door by adding a smart controller. You can do two different styles: I have the Chamberlain MyQ professionally installed smart garage opener, which means the device that controls my garage has these smarts built into it (plus a camera, but I find it doesn’t work great with how far the device is from my Wi-Fi router), or you can get a smart garage controller that can add smart features onto an existing garage door. Both let you check whether the garage is open or closed and operate it remotely, and you can add a video keypad that doubles as a video doorbell and can let you open or close the garage without your phone.
Smart Shades
The front of my home faces west, so it’s absolutely baking at the end of the day. What I need to add are some of our favorite smart shades to automate closing the shades on that side of the house at the right time of day. These also give your home a nice, cohesive look and immediate, controllable privacy from the outside world. WIRED reviewer Simon Hill recommends the SmartWings shades as his top picks, and Lutron’s Caseta shades if you’re looking for a more upgraded look.
Invisible Swaps
Looking to add some smarts without touching your existing setup? These switch-ups can make your front door and yard smart without being visible.
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